US20120236824A1 - Methods, systems, and computer readable media for diameter-based steering of mobile device network access - Google Patents

Methods, systems, and computer readable media for diameter-based steering of mobile device network access Download PDF

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US20120236824A1
US20120236824A1 US13/423,991 US201213423991A US2012236824A1 US 20120236824 A1 US20120236824 A1 US 20120236824A1 US 201213423991 A US201213423991 A US 201213423991A US 2012236824 A1 US2012236824 A1 US 2012236824A1
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Prior art keywords
radio access
access network
mobile device
network
diameter
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US13/423,991
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US8902854B2 (en
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Thomas Matthew McCann
Petrus Wilhelmus Adrianus Jacobus Maria Nas
Peter J. Marsico
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Tekelec Global Inc
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Tekelec Inc
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Assigned to TEKELEC, INC. reassignment TEKELEC, INC. ASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS). Assignors: MARSICO, PETER J., NAS, PETRUS WILHELMUS ADRIANUS JACOBUS MARIA, MCCANN, THOMAS MATTHEW
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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W48/00Access restriction; Network selection; Access point selection
    • H04W48/18Selecting a network or a communication service
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L47/00Traffic control in data switching networks
    • H04L47/10Flow control; Congestion control
    • H04L47/20Traffic policing
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W74/00Wireless channel access, e.g. scheduled or random access
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W8/00Network data management
    • H04W8/02Processing of mobility data, e.g. registration information at HLR [Home Location Register] or VLR [Visitor Location Register]; Transfer of mobility data, e.g. between HLR, VLR or external networks
    • H04W8/04Registration at HLR or HSS [Home Subscriber Server]
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W88/00Devices specially adapted for wireless communication networks, e.g. terminals, base stations or access point devices
    • H04W88/02Terminal devices
    • H04W88/06Terminal devices adapted for operation in multiple networks or having at least two operational modes, e.g. multi-mode terminals

Definitions

  • the subject matter described herein relates to Diameter-based steering of mobile device network access. More specifically, the subject matter relates to methods, systems, and computer readable media for Diameter-based steering of mobile device network access.
  • the Diameter protocol is a next generation authentication, authorization, and accounting (AAA) protocol.
  • the Diameter base protocol is defined in IETF RFC 3588, the disclosure of which is incorporated by reference herein in its entirety.
  • IMS Internet multimedia subsystem
  • RADIUS remote authentication dial-in user service
  • the RADIUS protocol was employed by Internet service providers (ISPs) to provide a secure communication channel between an ISP's access server and a secure location where user credential information was stored, e.g., a lightweight directory access protocol (LDAP) server.
  • ISPs Internet service providers
  • LDAP lightweight directory access protocol
  • Diameter aims to extend the standardized approach of RADIUS while providing expanded functionality and remaining open to future development.
  • the subject matter described herein includes a method for Diameter-based steering of mobile device network access.
  • the method includes receiving a Diameter message associated with a mobile device.
  • the method also includes determining, based on the Diameter message, whether the mobile device should be steered to access a radio access network or a radio access network type that is different from a radio access network or radio access network type currently supporting network access of the mobile device.
  • the method further includes, in response to determining that the mobile device should access the different radio access network or radio access network type, steering the mobile device to access the different radio access network or radio access network type.
  • the subject matter described herein includes a system for Diameter based steering of mobile device network access.
  • the system includes a network node.
  • the network node includes a communication interface configured to receive a Diameter message associated with a mobile device.
  • the network node also includes a steering module configured to determine, based on the Diameter message, whether the mobile device should be steered to access a radio access network or a radio access network type that is different from a radio access network or radio access network type currently supporting network access of the mobile device, and, in response to determining that the mobile device should access the different radio access network or radio access network type, steer the mobile device to access the different radio access network or radio access network type.
  • node refers to a physical computing platform including one or more processors and memory.
  • module refers to software in combination with hardware (such as a processor) and/or firmware for implementing features described herein.
  • the subject matter described herein can be implemented in software in combination with hardware and/or firmware.
  • the subject matter described herein may be implemented in software executed by one or more processors.
  • the subject matter described herein may be implemented using a non-transitory computer readable medium having stored thereon computer executable instructions that when executed by the processor of a computer control the computer to perform steps.
  • Exemplary computer readable media suitable for implementing the subject matter described herein include non-transitory computer readable media, such as disk memory devices, chip memory devices, programmable logic devices, and application specific integrated circuits.
  • a computer readable medium that implements the subject matter described herein may be located on a single device or computing platform or may be distributed across multiple devices or computing platforms.
  • FIG. 1 is a network diagram illustrating an exemplary network environment for Diameter-based steering of mobile device network access in accordance with embodiments of the subject matter described herein;
  • FIG. 2 is an exemplary message sequence for Diameter-based steering of mobile device network access to a different radio access network type in response to an update location request (ULR) in accordance with embodiments of the subject matter described herein;
  • ULR update location request
  • FIG. 3 is an exemplary message sequence for Diameter-based steering of mobile device network access to a different radio access network in response to a ULR in accordance with embodiments of the subject matter described herein;
  • FIG. 4 is an exemplary message sequence for Diameter-based steering of mobile device network access in response to a credit control request (CCR) in accordance with embodiments of the subject matter described herein;
  • CCR credit control request
  • FIG. 5 is an exemplary message sequence for Diameter-based steering of mobile device network access in which subscriber information is obtained from a subscriber data repository in accordance with embodiments of the subject matter described herein;
  • FIG. 6 is an exemplary message sequence for Diameter-based steering of mobile device network access in which the mobile device's universal subscriber identity module (USIM) is updated to reflect preferred roaming network information in response to a ULR in accordance with embodiments of the subject matter described herein;
  • USIM universal subscriber identity module
  • FIG. 7 is an exemplary message sequence for Diameter-based steering of mobile device network access in which the mobile device's USIM is updated to reflect preferred roaming network information in response to a CCR in accordance with embodiments of the subject matter described herein;
  • FIG. 8 is an exemplary message sequence for Diameter-based steering of mobile device network access in which the mobile device's USIM is updated to reflect preferred roaming network information by a policy and charging rules function (PCRF) node in response to a change in network priority information in accordance with embodiments of the subject matter described herein;
  • PCRF policy and charging rules function
  • FIG. 9 is an exemplary message sequence for Diameter-based steering of mobile device network access in which the mobile device's USIM is updated to reflect preferred roaming network information by a Diameter signaling router (DSR) node in response to a change in network priority information in accordance with embodiments of the subject matter described herein;
  • DSR Diameter signaling router
  • FIG. 10 is an exemplary steering policy rule data table for Diameter-based steering of mobile device network access in accordance with embodiments of the subject matter described herein;
  • FIG. 11 is an exemplary steering log data table for Diameter-based steering of mobile device network access in accordance with embodiments of the subject matter described herein;
  • FIG. 12 is a flow chart illustrating an exemplary process for Diameter-based steering of mobile device network access in accordance with embodiments of the subject matter described herein;
  • FIG. 13 is a block diagram illustrating a network node for Diameter-based steering of mobile device network access in accordance with embodiments of the subject matter described herein.
  • FIG. 1 is a network diagram illustrating an exemplary network environment for Diameter-based steering of mobile device network access in accordance with embodiments of the subject matter described herein.
  • network environment 100 may include one or more mobile devices.
  • network environment 100 may include mobile device 102 .
  • Mobile device 102 may be any mobile device suitable for communicating within network environment 100 .
  • mobile device 102 may be a mobile telephone handset, a smartphone, a personal digital assistant (PDA), a tablet computer, a laptop computer, a cellular modem, a cellular network access card, or any other device suitable for communicating within network environment 100 .
  • PDA personal digital assistant
  • Network environment 100 may also include carrier network 104 .
  • Carrier network 104 may support mobile device 102 and enable mobile device 102 to communicate within network environment 100 and to network nodes external to network environment 100 (not illustrated).
  • carrier network 104 may provide mobile device 102 with Internet access.
  • Carrier network 104 may include one or more network nodes for supporting mobile devices within network environment 100 (e.g., mobile device 102 ).
  • carrier network 104 may include subscriber data repository (SDR) node 106 .
  • SDR node 106 may serve as a central repository for subscriber related information and may be, for example, a home subscriber server (HSS) and/or a subscriber profile repository (SPR).
  • HSS home subscriber server
  • SPR subscriber profile repository
  • Carrier network 104 may also include policy and charging rules function (PCRF) node 108 .
  • PCRF node 108 may serve as a central policy decision point for network environment 100 and may make real-time policy decisions based on aggregated information pertaining to network environment 100 .
  • Carrier network 104 may also include policy and charging enforcement function (PCEF) node 110 .
  • PCEF node 110 may serve as a policy enforcement point within network environment 100 and may receive and enforce policy decisions received from PCRF node 108 .
  • PCEF node 110 may be, for example, a gateway general packet radio service (GPRS) support node (GGSN) and/or a packet data network (PDN) gateway node.
  • GPRS gateway general packet radio service
  • GGSN gateway general packet radio service
  • PDN packet data network
  • DSR node 112 may function as a Diameter routing agent, a Diameter proxy agent, and/or a Diameter translation agent for Diameter messages within network environment 100 .
  • Network environment 100 may also include one or more access networks for supporting communications between one or more mobile devices (e.g., mobile device 102 ) and carrier network 104 .
  • network environment 100 may include access networks 114 and 116 .
  • Access networks 114 and 116 may include one or more transceiver/receiver stations for wirelessly communicating with one or more mobile devices (e.g., mobile device 102 ).
  • access network 114 may include transceiver/receiver stations 118 and access network 116 may include transceiver/receiver stations 120 .
  • Access networks 114 and 116 may also include one or more network nodes for supporting communications with one or more mobile devices (e.g., mobile device 102 ).
  • access network 114 may include mobility management entity (MME) node 122 for supporting communications with one or more mobile devices associated with access network 114 .
  • access network 116 may include MME node 124 for supporting communications with one or more mobile devices associated with access network 116 .
  • Access networks 114 and 116 may utilize various radio access network types (e.g., global system for mobile communications radio access network (GRAN), global system for mobile communications edge radio access network (GERAN), and/or universal terrestrial radio access network (UTRAN)) for communicating with mobile devices operating in network environment 100 (e.g., mobile device 102 ).
  • GRAN global system for mobile communications radio access network
  • GERAN global system for mobile communications edge radio access network
  • UTRAN universal terrestrial radio access network
  • access network 114 may utilize radio access network type 126 and/or radio access network type 128 for communicating with mobile device 102 .
  • access network 116 may utilize radio access network type 130 and/or radio access network type 132 for communicating with mobile device 102 .
  • a provider may desire to manage how a particular subscriber or subset of subscribers utilizes its network resources at a given time or under a given set of network conditions. For example, a provider associated with carrier network 104 may prefer mobile device 102 utilize access network 114 versus access network 116 at a given time or under a given set of network conditions. Similarly, a provider associated with carrier network 104 may prefer mobile device 102 utilize radio access network type 126 versus radio access network type 128 and/or that mobile device 102 utilize radio access network type 130 versus radio access network type 132 at a given time or under a given set of network conditions.
  • Diameter-based steering of a mobile device may be utilized to steer a mobile device (e.g., mobile device 102 ) to a different radio access network (e.g., access network 114 and/or access network 116 ) and/or a different radio access network type (e.g., radio access network types 126 , 128 , 130 , and/or 132 ).
  • Diameter-based steering may be performed by one or more nodes within network environment 100 .
  • Diameter-based steering may be performed by PCRF node 108 and/or DSR node 112 .
  • PCRF node 108 and/or DSR node 112 may perform Diameter-based steering according to one or more steering/screening rules stored in one or more of steering/screening rules database 134 and/or steering/screening rules database 136 .
  • FIG. 2 is an exemplary message sequence for Diameter-based steering of mobile device network access to a different radio access network type in response to an update location request (ULR) in accordance with embodiments of the subject matter described herein.
  • mobile device 102 may be attached to one or more of access network 114 's transceiver/receiver stations 118 via radio access network type 126 .
  • access network 114 's MME node 122 may send a ULR message to SDR node 106 .
  • the ULR message may specify that a subscriber utilizing mobile device 102 is connected to access network 114 via radio access network type 126 .
  • DSR node 112 may intercept the ULR message.
  • DSR node 112 may determine that mobile device 102 should be steered to radio access network type 128 .
  • a steering rule stored in steering/screening rules database 136 may specify that the subscriber utilizing mobile device 102 should be steered to radio access network type 128 .
  • DSR node 112 may generate and communicate to MME node 122 an update location answer (ULA) message indicating that radio access network type 126 is not allowed for mobile device 102 .
  • MME node 122 may receive the ULA message and, at step 5 , may generate and communicate to mobile device 102 a detach request message indicating that mobile device 102 should detach from access network 114 .
  • mobile device 102 may reattach to one or more of access network 114 's transceiver/receiver stations 118 via radio access network type 128 .
  • access network 114 's MME node 122 may send a ULR message to SDR node 106 .
  • the ULR message may specify that a subscriber utilizing mobile device 102 is connected to access network 114 via radio access network type 128 .
  • DSR node 112 may route the ULR message to SDR node 106 which, at step 8 , may reply to access network 114 's MME node 122 with a ULA message indicating that the location was successfully updated.
  • FIG. 3 is an exemplary message sequence for Diameter-based steering of mobile device network access to a different radio access network in response to a ULR in accordance with embodiments of the subject matter described herein.
  • mobile device 102 may be attached to one or more of access network 114 's transceiver/receiver stations 118 .
  • access network 114 's MME node 122 may send a ULR message to SDR node 106 .
  • the ULR message may specify that a subscriber utilizing mobile device 102 is connected via access network 114 .
  • DSR node 112 may intercept the ULR message.
  • DSR node 112 may determine that mobile device 102 should be steered to access network 116 .
  • a steering rule stored in steering/screening rules database 136 may specify that the subscriber utilizing mobile device 102 should be steered to access network 116 .
  • DSR node 112 may determine that mobile device 102 should be steered to access network 116 by examining username information (e.g., information associated with the subscriber utilizing mobile device 102 ), visited network identification information (e.g., information associated with access network 114 ), and/or radio access network type identification information (e.g., information associated with radio access network type 126 and/or radio access network type 128 ) contained in the ULR message and may identify access network 116 based on the examined username information, visited network identification information, and/or radio access network type identification information.
  • DSR node 112 may log the Diameter-based steering event in a steering log table (not illustrated).
  • DSR node 112 may generate and communicate to MME node 122 an update location answer (ULA) message indicating that access network 114 is not allowed for mobile device 102 .
  • MME node 122 may receive the ULA message and, at step 5 , may generate and communicate to mobile device 102 a detach request message indicating that mobile device 102 should detach from access network 114 .
  • mobile device 102 may attach to one or more of access network 116 's transceiver/receiver stations 120 .
  • access network 116 's MME node 124 may send a ULR message to SDR node 106 .
  • the ULR message may specify that a subscriber utilizing mobile device 102 is connected to access network 116 .
  • DSR node 112 may route the ULR message to SDR node 106 which, at step 8 , may reply to access network 116 's MME node 124 with a ULA message indicating that the location was successfully updated.
  • a steering rule stored in steering/screening rules database 134 may specify that the subscriber utilizing mobile device 102 should be steered to access network 116 .
  • PCRF node 108 may determine that mobile device 102 should be steered to access network 116 by examining username information (e.g., information associated with the subscriber utilizing mobile device 102 ), visited network identification information (e.g., information associated with access network 114 ), and/or radio access network type identification information (e.g., information associated with radio access network type 126 and/or radio access network type 128 ) contained in the CCR message and may identify access network 116 based on the examined username information, visited network identification information, and/or radio access network type identification information.
  • PCRF node 108 may log the Diameter-based steering event in a steering log table (not illustrated).
  • PCRF node 108 may send a message to SDR node 106 instructing SDR node 106 to send a cancel location request (CLR) message to access network 114 's MME node 122 .
  • SDR node 106 may send a CLR message to access network 114 's MME node 122 .
  • mobile device 102 may detach from access network 114 .
  • mobile device 102 may send a message to access network 116 to initiate attachment and, at step 9 , mobile device 102 may establish a connection with PCEF node 110 via access network 116 .
  • access network 116 may send a ULR message to SDR node 106 indicating mobile device 102 's successful connection via access network 116 .
  • FIG. 5 is an exemplary message sequence for Diameter-based steering of mobile device network access in which subscriber information is obtained from a subscriber data repository in accordance with embodiments of the subject matter described herein.
  • mobile device 102 may be connected to PCEF node 110 via access network 114 .
  • PCEF node 110 may send a CCR message associated with mobile device 102 to PCRF node 108 .
  • PCRF node 108 may respond to the CCR message with a CCA message.
  • PCRF node 108 may determine that mobile device 102 should be steered to access network 116 .
  • PCRF node 108 may utilize username information contained in the CCR message (e.g., information associated with the subscriber utilizing mobile device 102 ) to query SDR node 106 for visited network identification information (e.g., information associated with access network 114 ) and/or radio access network type identification information (e.g., information associated with radio access network type 126 and/or radio access network type 128 ).
  • SDR node 106 may respond to PCRF node 108 's query with a response indicating that the subscriber utilizing mobile device 102 is connected via access network 114 , radio access network type 126 , and/or radio access network type 128 .
  • PCRF node 108 may log the Diameter-based steering event in a steering log table (not illustrated).
  • SDR node 106 may send a CLR message to access network 114 's MME node 122 .
  • mobile device 102 may detach from access network 114 .
  • mobile device 102 may send a message to access network 116 to initiate attachment and, at step 10 , mobile device 102 may establish a connection with PCEF node 110 via access network 116 .
  • access network 116 may send a ULR message to SDR node 106 indicating mobile device 102 's successful connection via access network 116 .
  • FIG. 6 is an exemplary message sequence for Diameter-based steering of mobile device network access in which the mobile device's universal subscriber identity module (USIM) is updated to reflect preferred roaming network information in response to a ULR in accordance with embodiments of the subject matter described herein.
  • mobile device 102 may be connected via access network 114 .
  • access network 114 may send a ULR message associated with mobile device 102 to SDR node 106 .
  • the ULR message may specify that a subscriber utilizing mobile device 102 is connected via access network 114 .
  • DSR node 112 may intercept the ULR message.
  • DSR node 112 may determine that mobile device 102 should be steered to access network 116 .
  • a steering rule stored in steering/screening rules database 136 may specify that the subscriber utilizing mobile device 102 should be steered to access network 116 .
  • DSR node 112 may determine that mobile device 102 should be steered to access network 116 by examining username information (e.g., information associated with the subscriber utilizing mobile device 102 ), visited network identification information (e.g., information associated with access network 114 ), and/or radio access network type identification information (e.g., information associated with radio access network type 126 and/or radio access network type 128 ) contained in the ULR message and may identify access network 116 based on the examined username information, visited network identification information, and/or radio access network type identification information.
  • DSR node 112 may log the Diameter-based steering event in a steering log table (not illustrated).
  • DSR node 112 may generate and communicate to mobile device 102 a USIM application toolkit (USAT) message to update mobile device 102 's preferred roaming network information (e.g., to modify mobile device 102 's preferred roaming network information so that access network 116 is given higher priority than access network 114 ).
  • USAT USIM application toolkit
  • mobile device 102 may receive the USAT message from DSR node 112 and may update its preferred roaming network information accordingly.
  • DSR node 112 may send a CLR message to access network 114 's MME node 122 .
  • DSR node 112 may send a message to SDR node 106 instructing SDR node 106 to send the CLR message to access network 114 's MME node 122 on its behalf (not illustrated).
  • mobile device 102 may detach from access network 114 .
  • mobile device 102 may send a message to access network 116 to initiate attachment and, at step 9 , mobile device 102 may establish a connection via access network 116 .
  • access network 116 may send a ULR message to SDR node 106 indicating mobile device 102 's successful connection via access network 116 .
  • FIG. 7 is an exemplary message sequence for Diameter-based steering of mobile device network access in which the mobile device's USIM is updated to reflect preferred roaming network information in response to a CCR in accordance with embodiments of the subject matter described herein.
  • mobile device 102 may be connected to PCEF node 110 via access network 114 .
  • PCEF node 110 may send a CCR message associated with mobile device 102 to PCRF node 108 .
  • PCRF node 108 may respond to the CCR message with a CCA message.
  • PCRF node 108 may determine that mobile device 102 should be steered to access network 116 .
  • a steering rule stored in steering/screening rules database 134 may specify that the subscriber utilizing mobile device 102 should be steered to access network 116 .
  • PCRF node 108 may determine that mobile device 102 should be steered to access network 116 by examining username information (e.g., information associated with the subscriber utilizing mobile device 102 ), visited network identification information (e.g., information associated with access network 114 ), and/or radio access network type identification information (e.g., information associated with radio access network type 126 and/or radio access network type 128 ) contained in the CCR message and may identify access network 116 based on the examined username information, visited network identification information, and/or radio access network type identification information.
  • PCRF node 108 may log the Diameter-based steering event in a steering log table (not illustrated).
  • PCRF node 108 may generate and communicate to mobile device 102 a USAT message to update mobile device 102 's preferred roaming network information (e.g., to modify mobile device 102 's preferred roaming network information so that access network 116 is given higher priority than access network 114 ).
  • mobile device 102 may receive the USAT message from PCRF node 108 and may update its preferred roaming network information accordingly.
  • PCRF node 108 may send a CLR message to access network 114 's MME node 122 .
  • PCRF node 108 may send a message to SDR node 106 instructing SDR node 106 to send the CLR message to access network 114 's MME node 122 on its behalf (not illustrated).
  • mobile device 102 may detach from access network 114 .
  • mobile device 102 may send a message to access network 116 to initiate attachment and, at step 10 , mobile device 102 may establish a connection with PCEF node 110 via access network 116 .
  • access network 116 may send a ULR message to SDR node 106 indicating mobile device 102 's successful connection via access network 116 .
  • FIG. 8 is an exemplary message sequence for Diameter-based steering of mobile device network access in which the mobile device's USIM is updated to reflect preferred roaming network information by a PCRF node in response to a change in network priority information in accordance with embodiments of the subject matter described herein.
  • mobile device 102 may be connected to PCEF node 110 via access network 114 .
  • SDR node 106 may send a message to PCRF node 108 indicating that access network 116 is now a higher priority network than access network 114 for a subscriber utilizing mobile device 102 .
  • PCRF node 108 may determine that mobile device 102 should be steered to access network 116 .
  • PCRF node 108 may determine that mobile device 102 should be steered to access network 116 in response to SDR node 106 's message indicating that access network 116 is now a higher priority network than access network 114 for the subscriber utilizing mobile device 102 .
  • PCRF node 108 may log the Diameter-based steering event in a steering log table (not illustrated).
  • PCRF node 108 may generate and communicate to mobile device 102 a USAT message to update mobile device 102 's preferred roaming network information (e.g., to modify mobile device 102 's preferred roaming network information so that access network 116 is given higher priority than access network 114 ).
  • mobile device 102 may receive the USAT message from PCRF node 108 and may update its preferred roaming network information accordingly.
  • PCRF node 108 may send a CLR message to access network 114 's MME node 122 .
  • PCRF node 108 may send a message to SDR node 106 instructing SDR node 106 to send the CLR message to access network 114 's MME node 122 on its behalf (not illustrated).
  • mobile device 102 may detach from access network 114 .
  • mobile device 102 may send a message to access network 116 to initiate attachment and, at step 9 , mobile device 102 may establish a connection with PCEF node 110 via access network 116 .
  • access network 116 may send a ULR message to SDR node 106 indicating mobile device 102 's successful connection via access network 116 .
  • FIG. 9 is an exemplary message sequence for Diameter-based steering of mobile device network access in which the mobile device's USIM is updated to reflect preferred roaming network information by a DSR node in response to a change in network priority information in accordance with embodiments of the subject matter described herein.
  • mobile device 102 may be connected to PCEF node 110 via access network 114 .
  • SDR node 106 may send a message to DSR node 112 indicating that access network 116 is now a higher priority network than access network 114 for a subscriber utilizing mobile device 102 .
  • DSR node 112 may generate and communicate to mobile device 102 a USAT message to update mobile device 102 's preferred roaming network information (e.g., to modify mobile device 102 's preferred roaming network information so that access network 116 is given higher priority than access network 114 ).
  • mobile device 102 may receive the USAT message from DSR node 112 and may update its preferred roaming network information accordingly.
  • DSR node 112 may send a CLR message to access network 114 's MME node 122 .
  • DSR node 112 may send a message to SDR node 106 instructing SDR node 106 to send the CLR message to access network 114 's MME node 122 on its behalf (not illustrated).
  • mobile device 102 may detach from access network 114 .
  • mobile device 102 may send a message to access network 116 to initiate attachment and, at step 9 , mobile device 102 may establish a connection with PCEF node 110 via access network 116 .
  • access network 116 may send a ULR message to SDR node 106 indicating mobile device 102 's successful connection via access network 116 .
  • FIG. 10 is an exemplary steering policy rule data table for Diameter-based steering of mobile device network access in accordance with embodiments of the subject matter described herein.
  • table 1000 may specify one or more steering policy rules.
  • table 1000 may include a column for specifying subscriber identification information (e.g., an international mobile subscriber identity (IMSI), a globally unique temporary identity (GUTI), and/or a uniform resource identifier (URI)).
  • subscriber identification information e.g., an international mobile subscriber identity (IMSI), a globally unique temporary identity (GUTI), and/or a uniform resource identifier (URI)
  • IMSI international mobile subscriber identity
  • GUI globally unique temporary identity
  • URI uniform resource identifier
  • Table 1000 may also include one or more columns for specifying one or more steering conditions.
  • table 1000 may include a column for specifying a radio access network steering condition, a radio access network type steering condition, a day of week steering condition, a time of day steering condition, and/or a tracking area, location area, and/or cell identifier steering condition.
  • Table 1000 may further include a column for specifying whether a subscriber matching specified steering conditions should be allowed or denied, and a column specifying an access technology list profile that should be communicated to the USIM of the mobile device being utilized by the subscriber.
  • Table 1000 may also include one or more entries specifying individual steering policy rules.
  • table 1000 may include an entry specifying that any subscriber identifier utilizing the “VisitedNetX” radio access network, any radio access network type, on any day of the week, at any time of the day, from any tracking area, location area, or cell identifier, should be denied using “ErrorCode_ 1 ”, and no access technology list profile should be communicated to the USIM of the mobile device being utilized by such subscriber.
  • Table 1000 may also include an entry specifying that subscriber identifier “SubID 1 ”, utilizing any radio access network, via radio access network type “RAT-typeY”, on any day of the week, at any time of the day, from any tracking area, location area, or cell identifier, should be denied using “ErrorCode_ 2 ”, and access technology list profile “List 1 ” should be communicated to the USIM of the mobile device being utilized by such subscriber.
  • table 1000 may be stored in one or more steering/screening rules databases, for example, steering/screening rules database 134 and/or steering/screening rules database 136 .
  • FIG. 11 is an exemplary steering log data table for Diameter-based steering of mobile device network access in accordance with embodiments of the subject matter described herein.
  • table 1100 may be utilized to log the occurrence of Diameter-based steering events.
  • table 1100 may include a column for specifying subscriber identification information (e.g., an IMSI, a GUTI, and/or a URI) for a Diameter-based steering event.
  • subscriber identification information e.g., an IMSI, a GUTI, and/or a URI
  • Table 1100 may also include a column for specifying an access technology list profile that was communicated to the USIM of the mobile device being utilized by the subscriber, and a column for specifying the time at which the profile was communicated.
  • Table 1100 may also include one or more entries specifying individual Diameter-based steering events.
  • table 1100 may include an entry specifying that a Diameter-based steering event occurred for subscriber identifier “SubID 1 ”, in which access technology list profile “List 1 ” was communicated to the USIM of the mobile device being utilized by the subscriber, on Jan. 1, 2010 at 02:30:34.
  • table 1100 may be stored in one or more steering/screening rules databases, for example, steering/screening rules database 134 and/or steering/screening rules database 136 .
  • FIG. 12 is a flow chart illustrating an exemplary process for Diameter-based steering of mobile device network access in accordance with embodiments of the subject matter described herein.
  • a Diameter message associated with a mobile device is received.
  • DSR node 112 may receive a ULR message associated with mobile device 102 .
  • DSR node 112 may determine, based on the ULR message, that mobile device 102 should be steered to access access network 116 .
  • step 1204 in response to determining that the mobile device should access the different radio access network or radio access network type, the mobile device is steered to access the different radio access network or radio access network type. For example, in response to determining that mobile device 102 should access access network 116 , mobile device 102 may be steered to access access network 116 .
  • FIG. 13 is a block diagram illustrating a network node for Diameter-based steering of mobile device network access in accordance with embodiments of the subject matter described herein.
  • DSR node 112 and/or PCRF node 108 may include communication interface 1300 .
  • Communication interface 1300 may be any interface suitable for sending and/or receiving Diameter messages.
  • Communication interface 1300 may be configured to receive a Diameter message associated with a mobile device.
  • communicate interface 1300 may be configured to receive a ULR message associated with mobile device 102 .
  • DSR node 112 and/or PCRF node 108 may also include steering module 1302 .
  • Steering module 1302 may be configured to determine, based on the Diameter message, whether the mobile device should be steered to access a radio access network or a radio access network type that is different from a radio access network or radio access network type currently supporting network access of the mobile device. For example, steering module 1302 may be configured to determine, based on the ULR message, that mobile device 102 should be steered to access access network 116 . Steering module 1302 may also be configured to, in response to determining that the mobile device should access the different radio access network or radio access network type, steer the mobile device to access the different radio access network or radio access network type. For example, steering module 1302 may be configured to, in response to determining that mobile device 102 should access access network 116 , steer mobile device 102 to access access network 116 .

Abstract

According to one aspect, the subject matter described herein includes a method for Diameter-based steering of mobile device network access. The method includes receiving a Diameter message associated with a mobile device. The method also includes determining, based on the Diameter message, whether the mobile device should be steered to access a radio access network or a radio access network type that is different from a radio access network or radio access network type currently supporting network access of the mobile device. The method further includes, in response to determining that the mobile device should access the different radio access network or radio access network type, steering the mobile device to access the different radio access network or radio access network type.

Description

    PRIORITY CLAIM
  • This application claims the benefit of U.S. Provisional Patent Application Ser. No. 61/454,456, filed Mar. 18, 2011; the disclosure of which is incorporated herein by reference in its entirety.
  • TECHNICAL FIELD
  • The subject matter described herein relates to Diameter-based steering of mobile device network access. More specifically, the subject matter relates to methods, systems, and computer readable media for Diameter-based steering of mobile device network access.
  • BACKGROUND
  • The Diameter protocol is a next generation authentication, authorization, and accounting (AAA) protocol. The Diameter base protocol is defined in IETF RFC 3588, the disclosure of which is incorporated by reference herein in its entirety. Commonly used within the Internet multimedia subsystem (IMS) architecture, the Diameter protocol was derived from the remote authentication dial-in user service (RADIUS) protocol. Historically, the RADIUS protocol was employed by Internet service providers (ISPs) to provide a secure communication channel between an ISP's access server and a secure location where user credential information was stored, e.g., a lightweight directory access protocol (LDAP) server. While the RADIUS protocol provided a standardized AAA exchange protocol, the emergence of new technologies and applications necessitated the development of a protocol capable of meeting ever-changing demands. Diameter aims to extend the standardized approach of RADIUS while providing expanded functionality and remaining open to future development.
  • As wireless communication technology continues to evolve, many providers are able to offer their subscribers services via a variety of radio access technologies supported by one or more radio access networks. While such an expanding infrastructure allows a provider to support greater services for its subscribers, often a provider may desire to manage how a particular subscriber or subset of subscribers utilizes its network resources at a given time or under a given set of network conditions.
  • Accordingly, a need exists for methods, systems, and computer readable media for Diameter-based steering of mobile device network access.
  • SUMMARY
  • According to one aspect, the subject matter described herein includes a method for Diameter-based steering of mobile device network access. The method includes receiving a Diameter message associated with a mobile device. The method also includes determining, based on the Diameter message, whether the mobile device should be steered to access a radio access network or a radio access network type that is different from a radio access network or radio access network type currently supporting network access of the mobile device. The method further includes, in response to determining that the mobile device should access the different radio access network or radio access network type, steering the mobile device to access the different radio access network or radio access network type.
  • According to another aspect, the subject matter described herein includes a system for Diameter based steering of mobile device network access. The system includes a network node. The network node includes a communication interface configured to receive a Diameter message associated with a mobile device. The network node also includes a steering module configured to determine, based on the Diameter message, whether the mobile device should be steered to access a radio access network or a radio access network type that is different from a radio access network or radio access network type currently supporting network access of the mobile device, and, in response to determining that the mobile device should access the different radio access network or radio access network type, steer the mobile device to access the different radio access network or radio access network type.
  • As used herein, the term “node” refers to a physical computing platform including one or more processors and memory.
  • As used herein, the term “module” refers to software in combination with hardware (such as a processor) and/or firmware for implementing features described herein.
  • The subject matter described herein can be implemented in software in combination with hardware and/or firmware. For example, the subject matter described herein may be implemented in software executed by one or more processors. In one exemplary implementation, the subject matter described herein may be implemented using a non-transitory computer readable medium having stored thereon computer executable instructions that when executed by the processor of a computer control the computer to perform steps. Exemplary computer readable media suitable for implementing the subject matter described herein include non-transitory computer readable media, such as disk memory devices, chip memory devices, programmable logic devices, and application specific integrated circuits. In addition, a computer readable medium that implements the subject matter described herein may be located on a single device or computing platform or may be distributed across multiple devices or computing platforms.
  • BRIEF DESCRIPTION OF THE DRAWINGS
  • The subject matter described herein will now be explained with reference to the accompanying drawings of which:
  • FIG. 1 is a network diagram illustrating an exemplary network environment for Diameter-based steering of mobile device network access in accordance with embodiments of the subject matter described herein;
  • FIG. 2 is an exemplary message sequence for Diameter-based steering of mobile device network access to a different radio access network type in response to an update location request (ULR) in accordance with embodiments of the subject matter described herein;
  • FIG. 3 is an exemplary message sequence for Diameter-based steering of mobile device network access to a different radio access network in response to a ULR in accordance with embodiments of the subject matter described herein;
  • FIG. 4 is an exemplary message sequence for Diameter-based steering of mobile device network access in response to a credit control request (CCR) in accordance with embodiments of the subject matter described herein;
  • FIG. 5 is an exemplary message sequence for Diameter-based steering of mobile device network access in which subscriber information is obtained from a subscriber data repository in accordance with embodiments of the subject matter described herein;
  • FIG. 6 is an exemplary message sequence for Diameter-based steering of mobile device network access in which the mobile device's universal subscriber identity module (USIM) is updated to reflect preferred roaming network information in response to a ULR in accordance with embodiments of the subject matter described herein;
  • FIG. 7 is an exemplary message sequence for Diameter-based steering of mobile device network access in which the mobile device's USIM is updated to reflect preferred roaming network information in response to a CCR in accordance with embodiments of the subject matter described herein;
  • FIG. 8 is an exemplary message sequence for Diameter-based steering of mobile device network access in which the mobile device's USIM is updated to reflect preferred roaming network information by a policy and charging rules function (PCRF) node in response to a change in network priority information in accordance with embodiments of the subject matter described herein;
  • FIG. 9 is an exemplary message sequence for Diameter-based steering of mobile device network access in which the mobile device's USIM is updated to reflect preferred roaming network information by a Diameter signaling router (DSR) node in response to a change in network priority information in accordance with embodiments of the subject matter described herein;
  • FIG. 10 is an exemplary steering policy rule data table for Diameter-based steering of mobile device network access in accordance with embodiments of the subject matter described herein;
  • FIG. 11 is an exemplary steering log data table for Diameter-based steering of mobile device network access in accordance with embodiments of the subject matter described herein;
  • FIG. 12 is a flow chart illustrating an exemplary process for Diameter-based steering of mobile device network access in accordance with embodiments of the subject matter described herein; and
  • FIG. 13 is a block diagram illustrating a network node for Diameter-based steering of mobile device network access in accordance with embodiments of the subject matter described herein.
  • DETAILED DESCRIPTION
  • Methods, systems, and computer readable media for Diameter-based steering of mobile device network access are provided. FIG. 1 is a network diagram illustrating an exemplary network environment for Diameter-based steering of mobile device network access in accordance with embodiments of the subject matter described herein. Referring to FIG. 1, network environment 100 may include one or more mobile devices. For example, network environment 100 may include mobile device 102. Mobile device 102 may be any mobile device suitable for communicating within network environment 100. For example, mobile device 102 may be a mobile telephone handset, a smartphone, a personal digital assistant (PDA), a tablet computer, a laptop computer, a cellular modem, a cellular network access card, or any other device suitable for communicating within network environment 100. Network environment 100 may also include carrier network 104. Carrier network 104 may support mobile device 102 and enable mobile device 102 to communicate within network environment 100 and to network nodes external to network environment 100 (not illustrated). For example, carrier network 104 may provide mobile device 102 with Internet access. Carrier network 104 may include one or more network nodes for supporting mobile devices within network environment 100 (e.g., mobile device 102). For example, carrier network 104 may include subscriber data repository (SDR) node 106. SDR node 106 may serve as a central repository for subscriber related information and may be, for example, a home subscriber server (HSS) and/or a subscriber profile repository (SPR).
  • Carrier network 104 may also include policy and charging rules function (PCRF) node 108. PCRF node 108 may serve as a central policy decision point for network environment 100 and may make real-time policy decisions based on aggregated information pertaining to network environment 100. Carrier network 104 may also include policy and charging enforcement function (PCEF) node 110. PCEF node 110 may serve as a policy enforcement point within network environment 100 and may receive and enforce policy decisions received from PCRF node 108. PCEF node 110 may be, for example, a gateway general packet radio service (GPRS) support node (GGSN) and/or a packet data network (PDN) gateway node. One or more network nodes within network environment 100 may communicate via one or more Diameter messages, and carrier network 104 may further include Diameter signaling router (DSR) node 112 for processing and/or routing such Diameter messages. In some embodiments, DSR node 112 may function as a Diameter routing agent, a Diameter proxy agent, and/or a Diameter translation agent for Diameter messages within network environment 100.
  • Network environment 100 may also include one or more access networks for supporting communications between one or more mobile devices (e.g., mobile device 102) and carrier network 104. For example, network environment 100 may include access networks 114 and 116. Access networks 114 and 116 may include one or more transceiver/receiver stations for wirelessly communicating with one or more mobile devices (e.g., mobile device 102). For example, access network 114 may include transceiver/receiver stations 118 and access network 116 may include transceiver/receiver stations 120. Access networks 114 and 116 may also include one or more network nodes for supporting communications with one or more mobile devices (e.g., mobile device 102). For example, access network 114 may include mobility management entity (MME) node 122 for supporting communications with one or more mobile devices associated with access network 114. Similarly, access network 116 may include MME node 124 for supporting communications with one or more mobile devices associated with access network 116. Access networks 114 and 116 may utilize various radio access network types (e.g., global system for mobile communications radio access network (GRAN), global system for mobile communications edge radio access network (GERAN), and/or universal terrestrial radio access network (UTRAN)) for communicating with mobile devices operating in network environment 100 (e.g., mobile device 102). For example access network 114 may utilize radio access network type 126 and/or radio access network type 128 for communicating with mobile device 102. Similarly, access network 116 may utilize radio access network type 130 and/or radio access network type 132 for communicating with mobile device 102.
  • As described above, a provider may desire to manage how a particular subscriber or subset of subscribers utilizes its network resources at a given time or under a given set of network conditions. For example, a provider associated with carrier network 104 may prefer mobile device 102 utilize access network 114 versus access network 116 at a given time or under a given set of network conditions. Similarly, a provider associated with carrier network 104 may prefer mobile device 102 utilize radio access network type 126 versus radio access network type 128 and/or that mobile device 102 utilize radio access network type 130 versus radio access network type 132 at a given time or under a given set of network conditions. In accordance with embodiments of the subject matter described herein, Diameter-based steering of a mobile device may be utilized to steer a mobile device (e.g., mobile device 102) to a different radio access network (e.g., access network 114 and/or access network 116) and/or a different radio access network type (e.g., radio access network types 126, 128, 130, and/or 132). Diameter-based steering may be performed by one or more nodes within network environment 100. For example, Diameter-based steering may be performed by PCRF node 108 and/or DSR node 112. In some embodiments, PCRF node 108 and/or DSR node 112 may perform Diameter-based steering according to one or more steering/screening rules stored in one or more of steering/screening rules database 134 and/or steering/screening rules database 136.
  • FIG. 2 is an exemplary message sequence for Diameter-based steering of mobile device network access to a different radio access network type in response to an update location request (ULR) in accordance with embodiments of the subject matter described herein. Referring to FIG. 2, at step 1, mobile device 102 may be attached to one or more of access network 114's transceiver/receiver stations 118 via radio access network type 126. At step 2, access network 114's MME node 122 may send a ULR message to SDR node 106. The ULR message may specify that a subscriber utilizing mobile device 102 is connected to access network 114 via radio access network type 126. En route to SDR node 106, DSR node 112 may intercept the ULR message. In accordance with embodiments of the subject matter described herein, at step 3, DSR node 112 may determine that mobile device 102 should be steered to radio access network type 128. For example, a steering rule stored in steering/screening rules database 136 may specify that the subscriber utilizing mobile device 102 should be steered to radio access network type 128. In some embodiments, DSR node 112 may determine that mobile device 102 should be steered to radio access network type 128 by examining username information (e.g., information associated with the subscriber utilizing mobile device 102), visited network identification information (e.g., information associated with access network 114), and/or radio access network type identification information (e.g., information associated with radio access network type 126) contained in the ULR message and may identify radio access network type 128 based on the examined username information, visited network identification information, and/or radio access network type identification information. In some embodiments DSR node 112 may log the Diameter-based steering event in a steering log table (not illustrated).
  • At step 4, DSR node 112 may generate and communicate to MME node 122 an update location answer (ULA) message indicating that radio access network type 126 is not allowed for mobile device 102. MME node 122 may receive the ULA message and, at step 5, may generate and communicate to mobile device 102 a detach request message indicating that mobile device 102 should detach from access network 114. At step 6, mobile device 102 may reattach to one or more of access network 114's transceiver/receiver stations 118 via radio access network type 128. At step 7, access network 114's MME node 122 may send a ULR message to SDR node 106. The ULR message may specify that a subscriber utilizing mobile device 102 is connected to access network 114 via radio access network type 128. DSR node 112 may route the ULR message to SDR node 106 which, at step 8, may reply to access network 114's MME node 122 with a ULA message indicating that the location was successfully updated.
  • FIG. 3 is an exemplary message sequence for Diameter-based steering of mobile device network access to a different radio access network in response to a ULR in accordance with embodiments of the subject matter described herein. Referring to FIG. 3, at step 1, mobile device 102 may be attached to one or more of access network 114's transceiver/receiver stations 118. At step 2, access network 114's MME node 122 may send a ULR message to SDR node 106. The ULR message may specify that a subscriber utilizing mobile device 102 is connected via access network 114. En route to SDR node 106, DSR node 112 may intercept the ULR message. In accordance with embodiments of the subject matter described herein, at step 3, DSR node 112 may determine that mobile device 102 should be steered to access network 116. For example, a steering rule stored in steering/screening rules database 136 may specify that the subscriber utilizing mobile device 102 should be steered to access network 116. In some embodiments, DSR node 112 may determine that mobile device 102 should be steered to access network 116 by examining username information (e.g., information associated with the subscriber utilizing mobile device 102), visited network identification information (e.g., information associated with access network 114), and/or radio access network type identification information (e.g., information associated with radio access network type 126 and/or radio access network type 128) contained in the ULR message and may identify access network 116 based on the examined username information, visited network identification information, and/or radio access network type identification information. In some embodiments DSR node 112 may log the Diameter-based steering event in a steering log table (not illustrated).
  • At step 4, DSR node 112 may generate and communicate to MME node 122 an update location answer (ULA) message indicating that access network 114 is not allowed for mobile device 102. MME node 122 may receive the ULA message and, at step 5, may generate and communicate to mobile device 102 a detach request message indicating that mobile device 102 should detach from access network 114. At step 6, mobile device 102 may attach to one or more of access network 116's transceiver/receiver stations 120. At step 7, access network 116's MME node 124 may send a ULR message to SDR node 106. The ULR message may specify that a subscriber utilizing mobile device 102 is connected to access network 116. DSR node 112 may route the ULR message to SDR node 106 which, at step 8, may reply to access network 116's MME node 124 with a ULA message indicating that the location was successfully updated.
  • FIG. 4 is an exemplary message sequence for Diameter-based steering of mobile device network access in response to a credit control request (CCR) in accordance with embodiments of the subject matter described herein. Referring to FIG. 4, at step 1, mobile device 102 may be connected to PCEF node 110 via access network 114. At step 2, PCEF node 110 may send a CCR message associated with mobile device 102 to PCRF node 108. At step 3, PCRF node 108 may respond to the CCR message with a credit control answer (CCA) message. In accordance with embodiments of the subject matter described herein, at step 4, PCRF node 108 may determine that mobile device 102 should be steered to access network 116. For example, a steering rule stored in steering/screening rules database 134 may specify that the subscriber utilizing mobile device 102 should be steered to access network 116. In some embodiments, PCRF node 108 may determine that mobile device 102 should be steered to access network 116 by examining username information (e.g., information associated with the subscriber utilizing mobile device 102), visited network identification information (e.g., information associated with access network 114), and/or radio access network type identification information (e.g., information associated with radio access network type 126 and/or radio access network type 128) contained in the CCR message and may identify access network 116 based on the examined username information, visited network identification information, and/or radio access network type identification information. In some embodiments PCRF node 108 may log the Diameter-based steering event in a steering log table (not illustrated).
  • At step 5, PCRF node 108 may send a message to SDR node 106 instructing SDR node 106 to send a cancel location request (CLR) message to access network 114's MME node 122. At step 6, SDR node 106 may send a CLR message to access network 114's MME node 122. At step 7, mobile device 102 may detach from access network 114. At step 8, mobile device 102 may send a message to access network 116 to initiate attachment and, at step 9, mobile device 102 may establish a connection with PCEF node 110 via access network 116. At step 10, access network 116 may send a ULR message to SDR node 106 indicating mobile device 102's successful connection via access network 116.
  • FIG. 5 is an exemplary message sequence for Diameter-based steering of mobile device network access in which subscriber information is obtained from a subscriber data repository in accordance with embodiments of the subject matter described herein. Referring to FIG. 5, at step 1, mobile device 102 may be connected to PCEF node 110 via access network 114. At step 2, PCEF node 110 may send a CCR message associated with mobile device 102 to PCRF node 108. At step 3, PCRF node 108 may respond to the CCR message with a CCA message. In accordance with embodiments of the subject matter described herein, at step 4, PCRF node 108 may determine that mobile device 102 should be steered to access network 116. For example, a steering rule stored in steering/screening rules database 134 may specify that subscribers utilizing access network 114, radio access network type 126, and/or radio access network type 128 should be steered to access network 116. In some embodiments, PCRF node 108 may determine that mobile device 102 should be steered to access network 116 by examining username information (e.g., information associated with the subscriber utilizing mobile device 102) contained in the CCR message and utilizing the username information to obtain visited network identification information (e.g., information associated with access network 114) and/or radio access network type identification information (e.g., information associated with radio access network type 126 and/or radio access network type 128). For example, at step 5, PCRF node 108 may utilize username information contained in the CCR message (e.g., information associated with the subscriber utilizing mobile device 102) to query SDR node 106 for visited network identification information (e.g., information associated with access network 114) and/or radio access network type identification information (e.g., information associated with radio access network type 126 and/or radio access network type 128). At step 6, SDR node 106 may respond to PCRF node 108's query with a response indicating that the subscriber utilizing mobile device 102 is connected via access network 114, radio access network type 126, and/or radio access network type 128. In some embodiments PCRF node 108 may log the Diameter-based steering event in a steering log table (not illustrated).
  • At step 7, SDR node 106 may send a CLR message to access network 114's MME node 122. At step 8, mobile device 102 may detach from access network 114. At step 9, mobile device 102 may send a message to access network 116 to initiate attachment and, at step 10, mobile device 102 may establish a connection with PCEF node 110 via access network 116. At step 11, access network 116 may send a ULR message to SDR node 106 indicating mobile device 102's successful connection via access network 116.
  • FIG. 6 is an exemplary message sequence for Diameter-based steering of mobile device network access in which the mobile device's universal subscriber identity module (USIM) is updated to reflect preferred roaming network information in response to a ULR in accordance with embodiments of the subject matter described herein. Referring to FIG. 6, at step 1, mobile device 102 may be connected via access network 114. At step 2, access network 114 may send a ULR message associated with mobile device 102 to SDR node 106. The ULR message may specify that a subscriber utilizing mobile device 102 is connected via access network 114. En route to SDR node 106, DSR node 112 may intercept the ULR message. In accordance with embodiments of the subject matter described herein, at step 3, DSR node 112 may determine that mobile device 102 should be steered to access network 116. For example, a steering rule stored in steering/screening rules database 136 may specify that the subscriber utilizing mobile device 102 should be steered to access network 116. In some embodiments, DSR node 112 may determine that mobile device 102 should be steered to access network 116 by examining username information (e.g., information associated with the subscriber utilizing mobile device 102), visited network identification information (e.g., information associated with access network 114), and/or radio access network type identification information (e.g., information associated with radio access network type 126 and/or radio access network type 128) contained in the ULR message and may identify access network 116 based on the examined username information, visited network identification information, and/or radio access network type identification information. In some embodiments DSR node 112 may log the Diameter-based steering event in a steering log table (not illustrated).
  • At step 4, DSR node 112 may generate and communicate to mobile device 102 a USIM application toolkit (USAT) message to update mobile device 102's preferred roaming network information (e.g., to modify mobile device 102's preferred roaming network information so that access network 116 is given higher priority than access network 114). At step 5, mobile device 102 may receive the USAT message from DSR node 112 and may update its preferred roaming network information accordingly. At step 6, DSR node 112 may send a CLR message to access network 114's MME node 122. In some embodiments, DSR node 112 may send a message to SDR node 106 instructing SDR node 106 to send the CLR message to access network 114's MME node 122 on its behalf (not illustrated). At step 7, mobile device 102 may detach from access network 114. At step 8, mobile device 102 may send a message to access network 116 to initiate attachment and, at step 9, mobile device 102 may establish a connection via access network 116. At step 10, access network 116 may send a ULR message to SDR node 106 indicating mobile device 102's successful connection via access network 116.
  • FIG. 7 is an exemplary message sequence for Diameter-based steering of mobile device network access in which the mobile device's USIM is updated to reflect preferred roaming network information in response to a CCR in accordance with embodiments of the subject matter described herein. Referring to FIG. 7, at step 1, mobile device 102 may be connected to PCEF node 110 via access network 114. At step 2, PCEF node 110 may send a CCR message associated with mobile device 102 to PCRF node 108. At step 3, PCRF node 108 may respond to the CCR message with a CCA message. In accordance with embodiments of the subject matter described herein, at step 4, PCRF node 108 may determine that mobile device 102 should be steered to access network 116. For example, a steering rule stored in steering/screening rules database 134 may specify that the subscriber utilizing mobile device 102 should be steered to access network 116. In some embodiments, PCRF node 108 may determine that mobile device 102 should be steered to access network 116 by examining username information (e.g., information associated with the subscriber utilizing mobile device 102), visited network identification information (e.g., information associated with access network 114), and/or radio access network type identification information (e.g., information associated with radio access network type 126 and/or radio access network type 128) contained in the CCR message and may identify access network 116 based on the examined username information, visited network identification information, and/or radio access network type identification information. In some embodiments PCRF node 108 may log the Diameter-based steering event in a steering log table (not illustrated).
  • At step 5, PCRF node 108 may generate and communicate to mobile device 102 a USAT message to update mobile device 102's preferred roaming network information (e.g., to modify mobile device 102's preferred roaming network information so that access network 116 is given higher priority than access network 114). At step 6, mobile device 102 may receive the USAT message from PCRF node 108 and may update its preferred roaming network information accordingly. At step 7, PCRF node 108 may send a CLR message to access network 114's MME node 122. In some embodiments, PCRF node 108 may send a message to SDR node 106 instructing SDR node 106 to send the CLR message to access network 114's MME node 122 on its behalf (not illustrated). At step 8, mobile device 102 may detach from access network 114. At step 9, mobile device 102 may send a message to access network 116 to initiate attachment and, at step 10, mobile device 102 may establish a connection with PCEF node 110 via access network 116. At step 11, access network 116 may send a ULR message to SDR node 106 indicating mobile device 102's successful connection via access network 116.
  • FIG. 8 is an exemplary message sequence for Diameter-based steering of mobile device network access in which the mobile device's USIM is updated to reflect preferred roaming network information by a PCRF node in response to a change in network priority information in accordance with embodiments of the subject matter described herein. Referring to FIG. 8, at step 1, mobile device 102 may be connected to PCEF node 110 via access network 114. At step 2, SDR node 106 may send a message to PCRF node 108 indicating that access network 116 is now a higher priority network than access network 114 for a subscriber utilizing mobile device 102. For example, an operator associated with carrier network 104 may have provisioned SDR node 106 with an updated steering rule specifying that access network 116 is now a higher priority network than access network 114 for the subscriber utilizing mobile device 102. In accordance with embodiments of the subject matter described herein, at step 3, PCRF node 108 may determine that mobile device 102 should be steered to access network 116. For example, PCRF node 108 may determine that mobile device 102 should be steered to access network 116 in response to SDR node 106's message indicating that access network 116 is now a higher priority network than access network 114 for the subscriber utilizing mobile device 102. In some embodiments PCRF node 108 may log the Diameter-based steering event in a steering log table (not illustrated).
  • At step 4, PCRF node 108 may generate and communicate to mobile device 102 a USAT message to update mobile device 102's preferred roaming network information (e.g., to modify mobile device 102's preferred roaming network information so that access network 116 is given higher priority than access network 114). At step 5, mobile device 102 may receive the USAT message from PCRF node 108 and may update its preferred roaming network information accordingly. At step 6, PCRF node 108 may send a CLR message to access network 114's MME node 122. In some embodiments, PCRF node 108 may send a message to SDR node 106 instructing SDR node 106 to send the CLR message to access network 114's MME node 122 on its behalf (not illustrated). At step 7, mobile device 102 may detach from access network 114. At step 8, mobile device 102 may send a message to access network 116 to initiate attachment and, at step 9, mobile device 102 may establish a connection with PCEF node 110 via access network 116. At step 10, access network 116 may send a ULR message to SDR node 106 indicating mobile device 102's successful connection via access network 116.
  • FIG. 9 is an exemplary message sequence for Diameter-based steering of mobile device network access in which the mobile device's USIM is updated to reflect preferred roaming network information by a DSR node in response to a change in network priority information in accordance with embodiments of the subject matter described herein. Referring to FIG. 9, at step 1, mobile device 102 may be connected to PCEF node 110 via access network 114. At step 2, SDR node 106 may send a message to DSR node 112 indicating that access network 116 is now a higher priority network than access network 114 for a subscriber utilizing mobile device 102. For example, an operator associated with carrier network 104 may have provisioned SDR node 106 with an updated steering rule specifying that access network 116 is now a higher priority network than access network 114 for the subscriber utilizing mobile device 102. In accordance with embodiments of the subject matter described herein, at step 3, DSR node 112 may determine that mobile device 102 should be steered to access network 116. For example, DSR node 112 may determine that mobile device 102 should be steered to access network 116 in response to SDR node 106's message indicating that access network 116 is now a higher priority network than access network 114 for the subscriber utilizing mobile device 102. In some embodiments DSR node 112 may log the Diameter-based steering event in a steering log table (not illustrated).
  • At step 4, DSR node 112 may generate and communicate to mobile device 102 a USAT message to update mobile device 102's preferred roaming network information (e.g., to modify mobile device 102's preferred roaming network information so that access network 116 is given higher priority than access network 114). At step 5, mobile device 102 may receive the USAT message from DSR node 112 and may update its preferred roaming network information accordingly. At step 6, DSR node 112 may send a CLR message to access network 114's MME node 122. In some embodiments, DSR node 112 may send a message to SDR node 106 instructing SDR node 106 to send the CLR message to access network 114's MME node 122 on its behalf (not illustrated). At step 7, mobile device 102 may detach from access network 114. At step 8, mobile device 102 may send a message to access network 116 to initiate attachment and, at step 9, mobile device 102 may establish a connection with PCEF node 110 via access network 116. At step 10, access network 116 may send a ULR message to SDR node 106 indicating mobile device 102's successful connection via access network 116.
  • FIG. 10 is an exemplary steering policy rule data table for Diameter-based steering of mobile device network access in accordance with embodiments of the subject matter described herein. Referring to FIG. 10, table 1000 may specify one or more steering policy rules. For example, table 1000 may include a column for specifying subscriber identification information (e.g., an international mobile subscriber identity (IMSI), a globally unique temporary identity (GUTI), and/or a uniform resource identifier (URI)). Table 1000 may also include one or more columns for specifying one or more steering conditions. For example, table 1000 may include a column for specifying a radio access network steering condition, a radio access network type steering condition, a day of week steering condition, a time of day steering condition, and/or a tracking area, location area, and/or cell identifier steering condition. Table 1000 may further include a column for specifying whether a subscriber matching specified steering conditions should be allowed or denied, and a column specifying an access technology list profile that should be communicated to the USIM of the mobile device being utilized by the subscriber.
  • Table 1000 may also include one or more entries specifying individual steering policy rules. For example, table 1000 may include an entry specifying that any subscriber identifier utilizing the “VisitedNetX” radio access network, any radio access network type, on any day of the week, at any time of the day, from any tracking area, location area, or cell identifier, should be denied using “ErrorCode_1”, and no access technology list profile should be communicated to the USIM of the mobile device being utilized by such subscriber. Table 1000 may also include an entry specifying that subscriber identifier “SubID1”, utilizing any radio access network, via radio access network type “RAT-typeY”, on any day of the week, at any time of the day, from any tracking area, location area, or cell identifier, should be denied using “ErrorCode_2”, and access technology list profile “List1” should be communicated to the USIM of the mobile device being utilized by such subscriber. In some embodiments, table 1000 may be stored in one or more steering/screening rules databases, for example, steering/screening rules database 134 and/or steering/screening rules database 136.
  • FIG. 11 is an exemplary steering log data table for Diameter-based steering of mobile device network access in accordance with embodiments of the subject matter described herein. Referring to FIG. 11, table 1100 may be utilized to log the occurrence of Diameter-based steering events. For example, table 1100 may include a column for specifying subscriber identification information (e.g., an IMSI, a GUTI, and/or a URI) for a Diameter-based steering event. Table 1100 may also include a column for specifying an access technology list profile that was communicated to the USIM of the mobile device being utilized by the subscriber, and a column for specifying the time at which the profile was communicated. Table 1100 may also include one or more entries specifying individual Diameter-based steering events. For example, table 1100 may include an entry specifying that a Diameter-based steering event occurred for subscriber identifier “SubID1”, in which access technology list profile “List1” was communicated to the USIM of the mobile device being utilized by the subscriber, on Jan. 1, 2010 at 02:30:34. In some embodiments, table 1100 may be stored in one or more steering/screening rules databases, for example, steering/screening rules database 134 and/or steering/screening rules database 136.
  • FIG. 12 is a flow chart illustrating an exemplary process for Diameter-based steering of mobile device network access in accordance with embodiments of the subject matter described herein. Referring to FIG. 12, in step 1200, a Diameter message associated with a mobile device is received. For example, DSR node 112 may receive a ULR message associated with mobile device 102. In step 1202, it is determined, based on the Diameter message, whether the mobile device should be steered to access a radio access network or radio access network type that is different from a radio access network or radio access network type currently supporting network access of the mobile device. For example, DSR node 112 may determine, based on the ULR message, that mobile device 102 should be steered to access access network 116. In step 1204, in response to determining that the mobile device should access the different radio access network or radio access network type, the mobile device is steered to access the different radio access network or radio access network type. For example, in response to determining that mobile device 102 should access access network 116, mobile device 102 may be steered to access access network 116.
  • FIG. 13 is a block diagram illustrating a network node for Diameter-based steering of mobile device network access in accordance with embodiments of the subject matter described herein. Referring to FIG. 13, DSR node 112 and/or PCRF node 108 may include communication interface 1300. Communication interface 1300 may be any interface suitable for sending and/or receiving Diameter messages. Communication interface 1300 may be configured to receive a Diameter message associated with a mobile device. For example, communicate interface 1300 may be configured to receive a ULR message associated with mobile device 102. DSR node 112 and/or PCRF node 108 may also include steering module 1302. Steering module 1302 may be configured to determine, based on the Diameter message, whether the mobile device should be steered to access a radio access network or a radio access network type that is different from a radio access network or radio access network type currently supporting network access of the mobile device. For example, steering module 1302 may be configured to determine, based on the ULR message, that mobile device 102 should be steered to access access network 116. Steering module 1302 may also be configured to, in response to determining that the mobile device should access the different radio access network or radio access network type, steer the mobile device to access the different radio access network or radio access network type. For example, steering module 1302 may be configured to, in response to determining that mobile device 102 should access access network 116, steer mobile device 102 to access access network 116.
  • It will be understood that various details of the subject matter described herein may be changed without departing from the scope of the subject matter described herein. Furthermore, the foregoing description is for the purpose of illustration only, and not for the purpose of limitation, as the subject matter described herein is defined by the claims as set forth hereinafter.

Claims (21)

1. A method for Diameter-based steering of mobile device network access, the method comprising:
receiving a Diameter message associated with a mobile device;
determining, based on the Diameter message, whether the mobile device should be steered to access a radio access network or a radio access network type that is different from a radio access network or radio access network type currently supporting network access of the mobile device; and
in response to determining that the mobile device should access the different radio access network or radio access network type, steering the mobile device to access the different radio access network or radio access network type.
2. The method of claim 1 wherein the Diameter message comprises a Diameter update location request (ULR) message or a Diameter credit control request (CCR) message.
3. The method of claim 2 wherein the Diameter message comprises a Diameter ULR message and steering the mobile device includes responding to an originator of the Diameter ULR message with a related Diameter update location answer (ULA) message that includes information instructing the mobile device to connect using the different radio access network or radio access network type.
4. The method of claim 2 wherein the Diameter message comprises a Diameter CCR message and steering the mobile device includes generating a Diameter cancel location request (CLR) message that triggers the mobile device to connect to the different radio access network or the different radio access network type.
5. The method of claim 1 wherein the Diameter message comprises at least one of username information, visited network identification information, and radio access type identification information.
6. The method of claim 5 wherein determining whether the mobile device should be steered includes examining the at least one of the username information, the visited network identification information, and the radio access type identification information, and identifying the different radio access network or radio access network type based on the username information, the visited network identification information, or the radio access type identification information.
7. The method of claim 5 wherein the Diameter message comprises username information and wherein determining whether the mobile device should be steered includes using the username information to obtain at least one of visited network identification information and visited network radio access type identification information, examining the visited network identification information or the visited network radio access type identification information, and identifying the different radio access network or radio access network type based on the visited network identification information or the visited network radio access type identification information.
8. The method of claim 5 wherein determining whether the mobile device should be steered includes examining the at least one of the username information, the visited network identification information, and the radio access type identification information, identifying the different radio access network or radio access network type based on the username information, the visited network identification information, or the radio access type identification information, and generating a universal subscriber identity module (USIM) application toolkit (USAT) message to update preferred roaming network information on the mobile device.
9. The method of claim 8 further comprising generating a Diameter cancel location request (CLR) message that causes the mobile device to disconnect from the current radio access network or current radio access network type and reconnect via the different radio access network or radio access network type.
10. The method of claim 1 comprising performing the steering at a Diameter signaling router (DSR) node or a policy and charging rules function (PCRF) node.
11. A system for Diameter-based steering of mobile device network access, the system comprising:
a network node comprising:
a communication interface configured to receive a Diameter message associated with a mobile device; and
a steering module configured to determine, based on the Diameter message, whether the mobile device should be steered to access a radio access network or a radio access network type that is different from a radio access network or radio access network type currently supporting network access of the mobile device, and, in response to determining that the mobile device should access the different radio access network or radio access network type, steer the mobile device to access the different radio access network or radio access network type.
12. The system of claim 11 wherein the Diameter message comprises a Diameter update location request (ULR) message or a Diameter credit control request (CCR) message.
13. The system of claim 12 wherein the Diameter message comprises a Diameter ULR message and the steering module is configured to steer the mobile device by responding to an originator of the Diameter ULR message with a related Diameter update location answer (ULA) message that includes information instructing the mobile device to connect using the different radio access network or radio access network type.
14. The system of claim 12 wherein the Diameter message comprises a Diameter CCR message and the steering module is configured to steer the mobile device by generating a Diameter cancel location request (CLR) message that triggers the mobile device to connect using the different radio access network or radio access network type.
15. The system of claim 11 wherein the Diameter message comprises at least one of username information, visited network identification information, and radio access type identification information.
16. The system of claim 15 wherein the steering module is configured to determine whether the mobile device should be steered by examining the at least one of the username information, the visited network identification information, and the radio access type identification information, and to identify the different radio access network or radio access network type based on the username information, the visited network identification information, or the radio access type identification information.
17. The system of claim 15 wherein the Diameter message comprises username information and wherein the steering module is configured to determine whether the mobile device should be steered by using the username information to obtain at least one of visited network identification information and visited network radio access type identification information, to examine the visited network identification information or the visited network radio access type identification information, and to identify the different radio access network or radio access network type based on the visited network identification information or the visited network radio access type identification information.
18. The system of claim 15 wherein the steering module is configured to determine whether the mobile device should be steered by examining the at least one of the username information, the visited network identification information, and the radio access type identification information, to identify the different radio access network or radio access network type based on the username information, the visited network identification information, or the radio access type identification information, and to generate a universal subscriber identity module (USIM) application toolkit (USAT) message to update preferred roaming network information on the mobile device.
19. The system of claim 18 wherein the steering module is configured to generate a Diameter cancel location request (CLR) message that causes the mobile device to disconnect from the current radio access network or radio access network type and reconnect via the different radio access network or radio access network type.
20. The system of claim 11 wherein the network node comprises at least one of a Diameter signaling router (DSR) and a policy and charging rules function (PCRF).
21. A non-transitory computer readable medium comprising computer executable instructions that when executed by a processor of a computer control the computer to perform steps comprising:
receiving a Diameter message associated with a mobile device;
determining, based on the Diameter message, whether the mobile device should be steered to access a radio access network or a radio access network type that is different from a radio access network or radio access network type currently supporting network access of the mobile device; and
in response to determining that the mobile device should access the different radio access network or radio access network type, steering the mobile device to access the different radio access network or radio access network type.
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Cited By (15)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20110158090A1 (en) * 2009-12-31 2011-06-30 Yusun Kim Riley Methods, systems, and computer readable media for condition-triggered policies
US20150023293A1 (en) * 2013-06-25 2015-01-22 Nest Labs, Inc. Efficient Communication for Devices of a Home Network
US20150023205A1 (en) * 2013-07-20 2015-01-22 Cisco Technology, Inc. Path computation element proxying for deterministic wireless networks
US20150065125A1 (en) * 2013-09-04 2015-03-05 Cellco Partnership D/B/A Verizon Wireless Connection state-based long term evolution steering of roaming
US20150257044A1 (en) * 2012-07-06 2015-09-10 Mobileum, Inc. Steering of roaming in lte and legacy network environment
US9225849B2 (en) 2011-05-06 2015-12-29 Tekelec, Inc. Methods, systems, and computer readable media for steering a subscriber between access networks
US9531704B2 (en) 2013-06-25 2016-12-27 Google Inc. Efficient network layer for IPv6 protocol
US10477385B2 (en) 2012-07-20 2019-11-12 Tekelec, Inc. Methods, systems and computer readable media for distributing policy rules to the mobile edge
US10505792B1 (en) 2016-11-02 2019-12-10 F5 Networks, Inc. Methods for facilitating network traffic analytics and devices thereof
US10812266B1 (en) 2017-03-17 2020-10-20 F5 Networks, Inc. Methods for managing security tokens based on security violations and devices thereof
US11122042B1 (en) 2017-05-12 2021-09-14 F5 Networks, Inc. Methods for dynamically managing user access control and devices thereof
US11178150B1 (en) 2016-01-20 2021-11-16 F5 Networks, Inc. Methods for enforcing access control list based on managed application and devices thereof
US11343237B1 (en) 2017-05-12 2022-05-24 F5, Inc. Methods for managing a federated identity environment using security and access control data and devices thereof
US11350254B1 (en) 2015-05-05 2022-05-31 F5, Inc. Methods for enforcing compliance policies and devices thereof
US11757946B1 (en) 2015-12-22 2023-09-12 F5, Inc. Methods for analyzing network traffic and enforcing network policies and devices thereof

Families Citing this family (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN105052080B (en) * 2013-02-18 2019-05-03 泰科来股份有限公司 For providing method, system and the computer-readable medium of thinking diameter network framework
JP6109343B2 (en) * 2013-02-18 2017-04-05 テケレック・インコーポレイテッドTekelec, Inc. Method, system, and computer-readable medium for providing a virtualized Diameter network architecture and for routing traffic to dynamically instantiated Diameter resource instances
US9838483B2 (en) 2013-11-21 2017-12-05 Oracle International Corporation Methods, systems, and computer readable media for a network function virtualization information concentrator
US11388082B2 (en) 2013-11-27 2022-07-12 Oracle International Corporation Methods, systems, and computer readable media for diameter routing using software defined network (SDN) functionality
US9917729B2 (en) 2015-04-21 2018-03-13 Oracle International Corporation Methods, systems, and computer readable media for multi-layer orchestration in software defined networks (SDNs)

Citations (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20070121501A1 (en) * 2005-11-29 2007-05-31 Lucent Technologies Inc. Method and apparatus for providing quality of service level in broadband communications systems
US20100291924A1 (en) * 2006-09-01 2010-11-18 Antrim Todd W Roaming selection services
US20100311392A1 (en) * 2007-11-01 2010-12-09 John Stenfelt Method and system for correlating authentication, authorization and accounting sessions
US20110096688A1 (en) * 2008-04-18 2011-04-28 Joachim Sachs Method of Operating an Access Network
US20110230188A1 (en) * 2010-03-18 2011-09-22 Sven Gemski Methods and Network Nodes in a Mobile Communication Network
US20120144226A1 (en) * 2010-12-01 2012-06-07 Chen-Yui Yang Method and apparatus for session establishment management

Family Cites Families (36)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
FI109071B (en) 2000-01-17 2002-05-15 Nokia Corp A signaling
US7684798B2 (en) * 2001-11-09 2010-03-23 Nokia Corporation Method of pre-authorizing handovers among access routers in communication networks
DE60334736D1 (en) 2002-09-27 2010-12-09 Nokia Corp ADVANCED QOS CONTROL
KR100497290B1 (en) 2002-12-24 2005-06-28 하나로텔레콤 주식회사 Authentication Method for fast handoff in mobile-based radius network
US7773502B2 (en) 2003-11-19 2010-08-10 Telefonaktiebolaget Lm Ericsson (Publ) Dynamic voice over data prioritization for wireless communication networks
US8027677B2 (en) * 2006-02-13 2011-09-27 Research In Motion Limited Automatic network selection methods and apparatus using a steered PLMN
US8355413B2 (en) 2006-02-17 2013-01-15 Cellco Partnership Policy based procedure to modify or change granted QoS in real time for CDMA wireless networks
CN100471160C (en) 2006-07-31 2009-03-18 华为技术有限公司 Method and system for realizing consulting tactical information between different network
US8856860B2 (en) 2006-08-18 2014-10-07 Cisco Technology, Inc. System and method for implementing policy server based application interaction manager
GB0702242D0 (en) * 2007-02-06 2007-03-14 Lucent Technologies Inc Mobility management across different access technologies for a multimode terminal
CN101272256B (en) 2007-03-23 2011-07-06 华为技术有限公司 Business handling method and system, policy control and charging regulation functional entity
CN101296509B (en) 2007-04-28 2012-12-12 华为技术有限公司 Method, system and related device for implementing urgent communication service
ATE462266T1 (en) 2007-04-30 2010-04-15 Nokia Siemens Networks Oy POLICY CONTROL IN A NETWORK
TWM343338U (en) 2007-05-25 2008-10-21 Interdigital Tech Corp Protocol architecture for access mobility in wireless communications
US8089942B2 (en) 2007-10-09 2012-01-03 Research In Motion Limited System and method for inter-radio access technology signal measurement
US8059533B2 (en) 2007-10-24 2011-11-15 Cisco Technology, Inc. Packet flow optimization (PFO) policy management in a communications network by rule name
EP2056570A1 (en) 2007-10-29 2009-05-06 Nokia Siemens Networks Oy Session and media binding to common control
US8326263B2 (en) 2007-12-27 2012-12-04 Zte Corporation Method for selecting policy and charging rules function
EP2088723A1 (en) * 2008-02-08 2009-08-12 NEC Corporation Method for controlling the steering of the roaming of user equipment in a wireless communication network
EP2297987A1 (en) 2008-05-30 2011-03-23 Alcatel-Lucent USA Inc. Online charging architecture in lte/epc communication networks
US8595368B2 (en) 2008-06-05 2013-11-26 Camiant, Inc. Method and system for providing mobility management in a network
JP5038534B2 (en) * 2008-11-14 2012-10-03 テレフオンアクチーボラゲット エル エム エリクソン(パブル) Detection and reporting of restricted policies and billing control capabilities
JP5052583B2 (en) * 2009-04-10 2012-10-17 株式会社エヌ・ティ・ティ・ドコモ Mobile communication method and mobile station
US20120076125A1 (en) 2009-06-03 2012-03-29 Telefonaktiebolaget Lm Ericsson (Publ) Operator control of resources for roaming subscribers
CA2763988A1 (en) * 2009-06-04 2010-12-09 Research In Motion Limited Methods and apparatus for use in facilitating the communication of neighboring network information to a mobile terminal with use of a radius compatible protocol
EP2603034B1 (en) 2009-07-17 2015-11-04 Koninklijke KPN N.V. Congestion control in a telecommunications network
JP5424314B2 (en) * 2009-07-21 2014-02-26 日本電気株式会社 Femtocell base station, gateway system, MAPGW apparatus, communication system, method and apparatus program
EP2296309B1 (en) 2009-09-11 2012-10-31 Alcatel Lucent A method for delivering policy rules to an end user, according on his/her account balance and service subscription level, in a telecommunication network
GB0916239D0 (en) 2009-09-16 2009-10-28 Vodafone Plc Internet breakout in HNB/Femto, UMTS and LTE networks
US8787174B2 (en) 2009-12-31 2014-07-22 Tekelec, Inc. Methods, systems, and computer readable media for condition-triggered policies
US8305922B2 (en) 2010-02-18 2012-11-06 Alcatel Lucent Method for PCRF to autonomously respond to cell capacity shortage
EP2548388A4 (en) 2010-03-15 2017-08-02 Tekelec, Inc. Methods, systems, and computer readable media for communicating policy information between a policy charging and rules function and a service node
US20110252477A1 (en) 2010-04-08 2011-10-13 Kamakshi Sridhar Dynamic Load Balancing In An Extended Self Optimizing Network
US8711721B2 (en) 2010-07-15 2014-04-29 Rivada Networks Llc Methods and systems for dynamic spectrum arbitrage
US9225849B2 (en) 2011-05-06 2015-12-29 Tekelec, Inc. Methods, systems, and computer readable media for steering a subscriber between access networks
JP6448536B2 (en) 2012-07-20 2019-01-09 テケレック・インコーポレイテッドTekelec, Inc. Method, system, and computer-readable medium for distributing policy rules to the mobile edge

Patent Citations (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20070121501A1 (en) * 2005-11-29 2007-05-31 Lucent Technologies Inc. Method and apparatus for providing quality of service level in broadband communications systems
US20100291924A1 (en) * 2006-09-01 2010-11-18 Antrim Todd W Roaming selection services
US20100311392A1 (en) * 2007-11-01 2010-12-09 John Stenfelt Method and system for correlating authentication, authorization and accounting sessions
US20110096688A1 (en) * 2008-04-18 2011-04-28 Joachim Sachs Method of Operating an Access Network
US20110230188A1 (en) * 2010-03-18 2011-09-22 Sven Gemski Methods and Network Nodes in a Mobile Communication Network
US20120144226A1 (en) * 2010-12-01 2012-06-07 Chen-Yui Yang Method and apparatus for session establishment management

Cited By (31)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US8787174B2 (en) 2009-12-31 2014-07-22 Tekelec, Inc. Methods, systems, and computer readable media for condition-triggered policies
US20110158090A1 (en) * 2009-12-31 2011-06-30 Yusun Kim Riley Methods, systems, and computer readable media for condition-triggered policies
US9225849B2 (en) 2011-05-06 2015-12-29 Tekelec, Inc. Methods, systems, and computer readable media for steering a subscriber between access networks
US20150257044A1 (en) * 2012-07-06 2015-09-10 Mobileum, Inc. Steering of roaming in lte and legacy network environment
US10028174B2 (en) * 2012-07-06 2018-07-17 Mobileum, Inc. Steering of roaming in LTE and legacy network environment
US10477385B2 (en) 2012-07-20 2019-11-12 Tekelec, Inc. Methods, systems and computer readable media for distributing policy rules to the mobile edge
US9338810B2 (en) 2013-06-25 2016-05-10 Google Inc. Efficient communication for devices of a home network
US9451573B2 (en) 2013-06-25 2016-09-20 Google Inc. Efficient communication for devices of a home network
US9036632B2 (en) * 2013-06-25 2015-05-19 Google Inc. Efficient communication for devices of a home network
US9326307B2 (en) 2013-06-25 2016-04-26 Google Inc. Efficient communication for devices of a home network
US10805200B2 (en) 2013-06-25 2020-10-13 Google Llc Efficient communication for devices of a home network
US9345058B2 (en) 2013-06-25 2016-05-17 Google Inc. Efficient communication for devices of a home network
CN105684356A (en) * 2013-06-25 2016-06-15 谷歌公司 Efficient communication for devices of a home network
US10320763B2 (en) 2013-06-25 2019-06-11 Google Inc. Efficient communication for devices of a home network
US20150023293A1 (en) * 2013-06-25 2015-01-22 Nest Labs, Inc. Efficient Communication for Devices of a Home Network
US9531704B2 (en) 2013-06-25 2016-12-27 Google Inc. Efficient network layer for IPv6 protocol
US9590975B2 (en) 2013-06-25 2017-03-07 Google Inc. Efficient network layer for IPv6 protocol
US9629193B2 (en) 2013-06-25 2017-04-18 Google Inc. Efficient communication for devices of a home network
US9648009B2 (en) 2013-06-25 2017-05-09 Google Inc. Efficient network layer for IPv6 protocol
US9674885B2 (en) 2013-06-25 2017-06-06 Google Inc. Efficient communication for devices of a home network
US9515914B2 (en) * 2013-07-20 2016-12-06 Cisco Technology, Inc. Path computation element proxying for deterministic wireless networks
US20150023205A1 (en) * 2013-07-20 2015-01-22 Cisco Technology, Inc. Path computation element proxying for deterministic wireless networks
US9191803B2 (en) * 2013-09-04 2015-11-17 Cellco Partnership Connection state-based long term evolution steering of roaming
US20150065125A1 (en) * 2013-09-04 2015-03-05 Cellco Partnership D/B/A Verizon Wireless Connection state-based long term evolution steering of roaming
US11350254B1 (en) 2015-05-05 2022-05-31 F5, Inc. Methods for enforcing compliance policies and devices thereof
US11757946B1 (en) 2015-12-22 2023-09-12 F5, Inc. Methods for analyzing network traffic and enforcing network policies and devices thereof
US11178150B1 (en) 2016-01-20 2021-11-16 F5 Networks, Inc. Methods for enforcing access control list based on managed application and devices thereof
US10505792B1 (en) 2016-11-02 2019-12-10 F5 Networks, Inc. Methods for facilitating network traffic analytics and devices thereof
US10812266B1 (en) 2017-03-17 2020-10-20 F5 Networks, Inc. Methods for managing security tokens based on security violations and devices thereof
US11122042B1 (en) 2017-05-12 2021-09-14 F5 Networks, Inc. Methods for dynamically managing user access control and devices thereof
US11343237B1 (en) 2017-05-12 2022-05-24 F5, Inc. Methods for managing a federated identity environment using security and access control data and devices thereof

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CN103493523A (en) 2014-01-01
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WO2012129167A1 (en) 2012-09-27
JP5661207B2 (en) 2015-01-28
JP2014508486A (en) 2014-04-03
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EP2687031B1 (en) 2018-10-17
US8902854B2 (en) 2014-12-02

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